4.6 Article

A faster algorithm for identifying signals using complex fuzzy sets

期刊

SOFT COMPUTING
卷 26, 期 15, 页码 7059-7079

出版社

SPRINGER
DOI: 10.1007/s00500-022-07132-6

关键词

Fast Fourier transform flow graph; Complex fuzzy sets; Inverse fast Fourier transform; Inverse discrete Fourier transform; Discrete Fourier transform; Discrete Fourier transform matrix

资金

  1. Higher Education Commission of Pakistan [7750/Federal/ NRPU/RD/HEC/ 2017]

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In this paper, we introduced new operations and formulas of set theory for complex fuzzy sets (CFSs) and presented their basic results and examples. Additionally, we proposed an algorithm to identify a reference signal out of a large number of signals, enabling faster measurement of signal values using CFSs.
In this paper, we established some new operations and formulas of set theory for complex fuzzy sets (CFSs). We introduced the basic results of CFSs with their examples using union, intersection, complement, dot product, complex fuzzy probalistic sum, complex fuzzy bold sum, complex fuzzy bold sum over associative law of union, etc. Moreover, we introduced an algorithm to identify a reference signal out of large number of signal having bigger N (Samples) received by a digital receiver. Thus, a new model is introduced for measuring the values of the signals in a faster way using CFSs.

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